Mineralization maintenance equipment
By designing the limiting components and rolling parts structure of the mineralization curing equipment, the problem of warping and deformation of mineralized products during the curing process was solved, achieving product stability and efficient transportation, and improving the uniformity and efficiency of the mineralization reaction.
Patent Information
- Application Number
- CN202520399255.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-03-10
AI Technical Summary
During the curing process, mineralized products are prone to warping, deformation, and dimensional instability due to the heat released by the mineralization reaction and the evaporation of water vapor.
A mineralization curing device was designed, which forms a clamping channel through first and second limiting components, and uses multiple rolling elements and adjusting elements to limit the mineralized products to avoid warping and deformation. This includes using rubber rings to increase friction and a drive motor to drive the rolling elements to rotate, thus ensuring product stability.
It effectively avoids warping and deformation of mineralized products during the curing process, ensures the dimensional stability and transportation efficiency of the products, and improves the uniformity and efficiency of the mineralization reaction.
Smart Images

Figure CN223933856U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mineralization maintenance technology, specifically to a mineralization maintenance equipment. Background Technology
[0002] Mineralization curing is an innovative technology that enhances material properties and achieves carbon dioxide fixation by accelerating carbonation reactions. It is primarily used in the building materials industry, especially for the curing of concrete products. Mineralization curing utilizes carbon dioxide (CO2) to react with alkaline components such as calcium and magnesium in concrete, generating carbonate minerals such as calcium carbonate (CaCO3). These carbonates fill the pores in the concrete, improving its microstructure and thus enhancing its mechanical strength and durability. This process not only accelerates the hardening of concrete but also achieves carbon dioxide fixation.
[0003] However, during the mineralization curing process of mineralized products, the mineralization reaction releases heat and generates water vapor evaporation, which can easily lead to dimensional instability issues such as warping and deformation. This not only affects the appearance quality of the mineralized products but may also cause a decline in their physical properties, reducing the product's pass rate. Utility Model Content
[0004] The purpose of this utility model is to overcome the above-mentioned technical deficiencies and propose a mineralization curing equipment to solve the technical problem that mineralized products are prone to warping and deformation and dimensional instability during the mineralization curing process in the prior art, due to the release of heat and the generation of water vapor evaporation during the mineralization reaction.
[0005] To achieve the above-mentioned technical objectives, the present invention adopts the following technical solution:
[0006] This utility model provides a mineralization curing device, comprising:
[0007] A first limiting component includes a first connector and a plurality of first rolling elements, wherein the plurality of first rolling elements are all disposed on the first connector; and
[0008] The second limiting component includes a second connector and a plurality of second rolling elements. The plurality of second rolling elements are all disposed on the second connector. A clamping channel is formed between the plurality of second rolling elements and the plurality of first rolling elements. The plurality of second rolling elements are distributed along the length extension direction of the clamping channel and are located on the same plane facing the outer edge of the clamping channel. The plurality of first rolling elements are distributed along the length extension direction of the clamping channel and are located on the same plane facing the outer edge of the clamping channel.
[0009] In some embodiments, the second limiting component further includes a second adjusting member connected to the second connecting member and capable of driving a plurality of the second rolling members closer to or further away from a plurality of the first rolling members.
[0010] In some embodiments, both the first rolling element and the second rolling element are fitted with rubber rings.
[0011] In some embodiments, the first limiting component further includes a first adjusting member connected to the first connecting member and capable of driving the plurality of first rolling members toward or away from the plurality of second rolling members.
[0012] In some embodiments, the first limiting component further includes a plurality of first drive motors, which are connected to a plurality of non-adjacent first rolling elements and are used to drive the corresponding first rolling elements to rotate.
[0013] In some embodiments, a plurality of the first rolling elements are rotatably connected to the first connecting element, and the second limiting component further includes a plurality of second drive motors, which are connected to a plurality of non-adjacent second rolling elements and are used to drive the corresponding second rolling elements to rotate.
[0014] In some embodiments, a plurality of second rolling elements are rotatably connected to the second connecting element, and the first limiting component further includes a conveyor belt sleeved on the plurality of first rolling elements, the conveyor belt being rotatable when the first drive motor is working.
[0015] In some embodiments, the mineralization curing equipment further includes a working box, which has a reaction chamber. The first limiting component and the second limiting component are built into the reaction chamber, and the second limiting component is disposed below the first limiting component.
[0016] In some embodiments, the mineralization curing equipment further includes a carbon dioxide output pipe, the outlet end of which is connected to the reaction chamber, and the gas ejection direction of the carbon dioxide output pipe is opposite to the conveying direction of the clamping channel.
[0017] Compared with the prior art, the mineralization curing equipment provided by this utility model has multiple first rolling elements and multiple second rolling elements that can form a clamping channel for limiting the mineralized product. The multiple first rolling elements and multiple second rolling elements are distributed along the length extension direction of the clamping channel. The multiple first rolling elements and multiple second rolling elements are all located on the same plane facing the outer edge of the clamping channel. The vertical positions of the first rolling elements and the second rolling elements remain unchanged, and the space of the clamping channel remains fixed. When the mineralized product is located in the clamping channel, it can be subjected to the squeezing force of the first rolling elements and the second rolling elements, so as to avoid the problem of dimensional instability such as warping and deformation of the mineralized product. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of the mineralization curing equipment according to an embodiment of the present invention;
[0019] Figure 2 yes Figure 1 An enlarged schematic diagram of part A in the diagram;
[0020] Figure 3 This is a schematic diagram of the structure of the mineralization curing equipment according to another embodiment of the present invention;
[0021] Figure 4 This is a schematic diagram of the structure of the mineralization curing equipment according to another embodiment of the present invention;
[0022] Figure 5 This is a structural schematic diagram of the mineralization maintenance equipment according to another embodiment of the present invention. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0024] To address the technical problem of warping and deformation of mineralized products during the mineralization curing process in the prior art, which is caused by the release of heat and the evaporation of water vapor during the mineralization reaction, this utility model provides a mineralization curing device that can limit the compression of mineralized products during the mineralization reaction process, thereby avoiding the problem of warping and deformation of mineralized products.
[0025] Please see Figure 1 , Figure 1This is a schematic diagram of the structure of a mineralization curing device in one embodiment of the present invention. The mineralization curing device includes a first limiting component 1 and a second limiting component 2. The first limiting component 1 and the second limiting component 2 are used to clamp and compress the mineralized product 6. This not only limits the mineralized product 6 so that the mineralized product 6 can carry out a stable mineralization reaction, but also prevents the mineralized product 6 from undergoing large deformation during the mineralization reaction by limiting it.
[0026] The first limiting component 1 includes a first connecting member 11 and a plurality of first rolling members 13. The plurality of first rolling members 13 are rotatably disposed on the first connecting member 11 at intervals, so that when the first rolling members 13 rotate, they can drive the mineralized product 6 to move along the arrangement direction of the plurality of first rolling members 13 through friction. The plurality of first rolling members 13 can also be fixedly disposed on the first connecting member 11, limiting only the mineralized product 6. The central axes of the plurality of first rolling members 13 are parallel, their outer edges are on the same plane, and they are of the same size, so that the contact points between the plurality of first rolling members 13 and the mineralized product 6 are located on the same plane, and the plurality of first rolling members 13 can simultaneously press against the mineralized product 6, which is particularly suitable for limiting mineralized products 6 with planar surfaces.
[0027] The second limiting component 2 includes a second connecting member 21 and a plurality of second rolling members 23. The plurality of second rolling members 23 are rotatably disposed on the second connecting member 21 at intervals, and the central axes of the plurality of second rolling members 23 are parallel and their outer edges are in the same plane.
[0028] In this embodiment, a clamping channel for holding the mineralized product 6 is formed between a plurality of first rolling members 13 and a plurality of second rolling members 23 at intervals. The second adjusting member 22 can drive the second connecting member 21 to reciprocate, and the second connecting member 21 is connected to a plurality of second rolling members 23. When the mineralized product 6 is located in the clamping channel and is clamped by the first rolling members 13 and the second rolling members 23, the first rolling members 13 and the second rolling members 23 can jointly limit the mineralized product 6 to avoid large deformation of the mineralized product 6 during the mineralization reaction.
[0029] In one embodiment, please refer to Figure 2 The second limiting component 2 also includes a second adjusting member 22, which is connected to the second connecting member 21 and can drive multiple second rolling members 23 to approach or move away from multiple first rolling members 13 to adjust the size of the clamping channel. It is suitable for limiting mineralized products 6 of different sizes.
[0030] In one embodiment, please refer to Figure 2The second adjusting member 22 includes a housing 221, a rack 222 and an adjusting knob 223. The rack 222 is slidably disposed on the housing 221 and connected to the second connecting member 21. The adjusting knob 223 is rotatably disposed on the housing 221 and engages with the rack 222. In this embodiment, the housing 221 can be installed in a fixed position. The housing 221 is hollow inside and can be used to slide the rack 222. The center of the adjusting knob 223 has a gear. The gear extends into the housing 221 and meshes with the rack 222, so that when the adjusting knob 223 is rotated, it can drive the gear to rotate. The gear drives the rack 222 to slide back and forth relative to the housing 221 through meshing. When the rack 222 slides back and forth, it can drive the second connecting member 21 to move closer to or away from the multiple first rolling members 13. Since the second connecting member 21 is connected to multiple second rolling members 23, the rack 222 can drive the multiple second rolling members 23 to move closer to or away from the multiple first rolling members 13 when it slides back and forth, so as to adjust the size of the clamping channel between the multiple first rolling members 13 and the multiple second rolling members 23.
[0031] In one embodiment, please refer to Figure 1 There are two second adjusting members 22, each connected to one end of the second connecting member 21. In this embodiment, the racks 222 of the two second adjusting members 22 are connected to the two ends of the second connecting member 21, and the connection method is not limited; it can be welding or hanging. In this embodiment, by operating two adjusting knobs 223, a force is applied to both ends of the second connecting member 21, making the clamping channel more stable. In other embodiments, the second adjusting member 22 can also be set as one, with its rack 222 connected to the middle part of the second connecting member 21, which can also stably control the reciprocating motion of the second connecting member 21.
[0032] In one embodiment, both the first rolling element 13 and the second rolling element 23 are fitted with rubber rings (not shown in the figure). In this embodiment, the rubber rings can be made of rubber or silicone, so that both the first rolling element 13 and the second rolling element 23 can abut against the mineralized product 6 through the rubber rings, thereby increasing the friction between the first rolling element 13, the second rolling element 23 and the mineralized product 6. When the first rolling element 13 and / or the second rolling element 23 are rotating autonomously, they can stably drive the mineralized product 6 to reciprocate along the arrangement direction of the plurality of first rolling elements 13 or the plurality of second rolling elements 23, so as to stably transport the mineralized product 6.
[0033] In one embodiment, please refer to Figure 3The first limiting component 1 also includes a first adjusting member 12, which is connected to the first connecting member 11 and can drive multiple first rolling members 13 to move closer to or away from multiple second rolling members 23. In this embodiment, the structures of the first adjusting member 12 and the second adjusting member 22 are identical, and will not be described in detail here. By setting the first adjusting member 12, this embodiment can drive multiple first rolling members 13 to move closer to or away from the second rolling members 23 to adjust the size of the clamping channel. Therefore, the size of the clamping channel can be adjusted by selectively manipulating the first adjusting member 12 and / or the second adjusting member 22, making the adjustment of the clamping channel more flexible and selective.
[0034] In one embodiment, the first limiting component 1 further includes multiple first drive motors (not shown in the figure). These multiple first drive motors are connected to multiple non-adjacent first rolling elements 13 and are used to drive the corresponding first rolling elements 13 to rotate. In this embodiment, the first drive motors can drive the corresponding first rolling elements 13 to rotate during operation. By setting the first drive motors, some of the first rolling elements 13 can act as drive wheels, rotating autonomously to move the mineralized product 6 in the clamping channel. After the mineralized product 6 has completed the mineralization reaction, the first drive motors can be activated, and the mineralized product 6 can be moved to the next area. The multiple first drive motors connected to the multiple non-adjacent first rolling elements 13 are used to maximize the driving range while reducing the number of first drive motors.
[0035] In one embodiment, the second limiting component 2 further includes multiple second drive motors (not shown in the figure). These multiple second drive motors are connected to multiple non-adjacent second rolling elements 23 and are used to drive the corresponding second rolling elements 23 to rotate. In this embodiment, the second drive motors can drive the corresponding second rolling elements 23 to rotate during operation. By setting the second drive motors, some of the second rolling elements 23 can act as drive wheels, rotating autonomously to move the mineralized product 6 in the clamping channel. This embodiment can simultaneously provide a first drive motor and a second drive motor to simultaneously drive the first rolling element 13 and the second rolling element 23 to rotate, thereby improving the efficiency of transporting the mineralized product 6.
[0036] In one embodiment, please refer to Figure 4The first limiting component 1 also includes a conveyor belt 14, which is sleeved on a plurality of first rolling elements 13. The conveyor belt 14 can rotate when the first drive motor is working. In this embodiment, the conveyor belt 14 contacts the mineralized product 6 to clamp and limit the mineralized product 6, and can squeeze the mineralized product 6 during the mineralization reaction to prevent excessive deformation of the mineralized product 6. Compared with using rolling elements to squeeze the mineralized product 6, this embodiment uses the conveyor belt 14 to squeeze the mineralized product 6, which can improve the uniformity of the force applied to the mineralized product 6 and avoid easily damaging the mineralized product 6. In addition, when one or more of the first drive motors are working, the first rolling elements 13 can drive the conveyor belt 14 to rotate, so that the conveyor belt 14 can drive the mineralized product 6 to move while limiting it.
[0037] In one embodiment, please refer to Figure 5 The mineralization curing equipment also includes a working chamber 3 and a carbon dioxide output pipe 4. The working chamber 3 contains a reaction chamber 31. A first limiting component 1 and a second limiting component 2 are respectively located on the top and bottom walls of the reaction chamber 31. The gas ejection direction of the carbon dioxide output pipe 4 is opposite to the conveying direction of the conveyor belt 14. In this embodiment, the carbon dioxide output pipe 4 can be connected to a carbon dioxide source to obtain carbon dioxide, which is then ejected from the outlet towards the oncoming mineralized product 6, where it undergoes a mineralization reaction. The direction of carbon dioxide ejection is opposite to the movement direction of the mineralized product 6, which facilitates greater contact between the carbon dioxide and the mineralized product 6, improving the efficiency of the mineralization reaction.
[0038] Further, please refer to Figure 5 The mineralization curing equipment also includes a feeding assembly 5, which includes a feeding track 51 and a feeding platform 52. The working box 3 has an inlet 32 that connects to the reaction chamber 31. The feeding platform 52 can receive the mineralized product 6 from the inlet 32 and transport the mineralized product 6 along the feeding track 51 to the first rolling element 13. In this embodiment, the feeding platform 52 has a rotatable conveyor belt. The feeding platform 52 can first move along the feeding track 51 to the inlet to receive the mineralized product 6 to be reacted, and then transport the mineralized product 6 along the feeding track 51 to the clamping channel for mineralization reaction. The feeding platform 52 has a motor (not shown in the figure) for driving the conveyor belt to rotate. The feeding platform 52 also has a gear motor (not shown in the figure). The gear motor meshes with the feeding track 51 so that when the gear motor is working, it can drive the feeding platform 52 to move along the feeding track 51 through the meshing reaction force. This movement principle is prior art and will not be described in detail here.
[0039] The working box 3 has a feeding area 32 and a discharging area 33. The feeding area 32 is equipped with a feeding rail 51 and a feeding platform 52. The discharging area 33 is equipped with a discharging rail 53 and a discharging platform 54. The structure of the discharging rail 53 is the same as that of the feeding rail 51, and the structure of the discharging platform 54 is the same as that of the feeding platform 52. These details will not be elaborated further. The working box 3 also has a discharge port. The discharging platform 54 is used to receive the mineralized product 6 that is output from the discharge port after the mineralization reaction, and to transport the mineralized product 6 to the outlet 34 for output.
[0040] The reaction chamber 31 of the working box 3 has two layers. Each layer of reaction chamber 31 is equipped with a first limiting component 1, a second limiting component 2 and a carbon dioxide output pipe 4. Both layers of reaction chamber 31 can be used for the mineralization reaction of mineralized products 6, and they do not affect each other, which is conducive to improving work efficiency.
[0041] To better understand this utility model, the following is combined with... Figures 1 to 5 The technical solution of this utility model is described in detail below:
[0042] The mineralization curing equipment provided by this utility model has multiple first rolling elements 13 and multiple second rolling elements 23 that can form a clamping channel for clamping mineralized products 6. The second adjusting element 22 can drive the second connecting element 21 to move back and forth, thereby indirectly driving the multiple second rolling elements 23 to move closer to or further away from the multiple first rolling elements 13, adjusting the size of the clamping channel so that the clamping channel can clamp mineralized products 6 of different sizes, and adjusting the squeezing force of the rolling elements on the mineralized products to avoid problems such as warping and deformation of the mineralized products and dimensional instability.
[0043] The specific embodiments of this utility model described above do not constitute a limitation on the scope of protection of this utility model. Any other corresponding changes and modifications made based on the technical concept of this utility model should be included within the scope of protection of the claims of this utility model.
Claims
1. A mineralization curing equipment, characterized in that, include: The first limiting component includes a first connector and a plurality of first rolling elements, wherein the plurality of first rolling elements are all disposed on the first connector; and The second limiting component includes a second connector and a plurality of second rolling elements. The plurality of second rolling elements are all disposed on the second connector. A clamping channel is formed between the plurality of second rolling elements and the plurality of first rolling elements. The plurality of second rolling elements are distributed along the length extension direction of the clamping channel and are located on the same plane facing the outer edge of the clamping channel. The plurality of first rolling elements are distributed along the length extension direction of the clamping channel and are located on the same plane facing the outer edge of the clamping channel.
2. The mineralization curing equipment according to claim 1, characterized in that, The second limiting component further includes a second adjusting member, which is connected to the second connecting member and is capable of driving the plurality of second rolling members closer to or further away from the plurality of first rolling members.
3. The mineralization curing equipment according to claim 2, characterized in that, The second adjusting component includes a housing, a rack, and an adjusting knob. The rack is slidably disposed on the housing and connected to the second connecting component. The adjusting knob is rotatably disposed on the housing and engages with the rack.
4. The mineralization curing equipment according to claim 1, characterized in that, Both the first rolling element and the second rolling element are fitted with rubber rings.
5. The mineralization curing equipment according to claim 1, characterized in that, The first limiting component further includes a first adjusting member, which is connected to the first connecting member and is capable of driving the plurality of first rolling members to move closer to or further away from the plurality of second rolling members.
6. The mineralization curing equipment according to claim 1, characterized in that, The first rolling elements are rotatably connected to the first connecting element. The first limiting component also includes a plurality of first drive motors. The plurality of first drive motors are connected to the plurality of non-adjacent first rolling elements and are used to drive the corresponding first rolling elements to rotate.
7. The mineralization curing equipment according to claim 6, characterized in that, The plurality of second rolling elements are rotatably connected to the second connecting element, and the second limiting component further includes a plurality of second drive motors. The plurality of second drive motors are connected to the plurality of non-adjacent second rolling elements and are used to drive the corresponding second rolling elements to rotate.
8. The mineralization curing equipment according to claim 6, characterized in that, The first limiting component also includes a conveyor belt, which is sleeved on a plurality of the first rolling elements, and the conveyor belt is capable of rotating when the first drive motor is working.
9. The mineralization curing equipment according to claim 1, characterized in that, The mineralization curing equipment also includes a working box, which is provided with a reaction chamber. The first limiting component and the second limiting component are built into the reaction chamber, and the second limiting component is located below the first limiting component.
10. The mineralization curing equipment according to claim 9, characterized in that, The mineralization curing equipment also includes a carbon dioxide output pipe, the gas outlet of which is connected to the reaction chamber, and the gas ejection direction of the carbon dioxide output pipe is opposite to the conveying direction of the clamping channel.